US20140218617A1 - Display Device - Google Patents
Display Device Download PDFInfo
- Publication number
- US20140218617A1 US20140218617A1 US14/165,884 US201414165884A US2014218617A1 US 20140218617 A1 US20140218617 A1 US 20140218617A1 US 201414165884 A US201414165884 A US 201414165884A US 2014218617 A1 US2014218617 A1 US 2014218617A1
- Authority
- US
- United States
- Prior art keywords
- heat
- radiation member
- heat radiation
- display device
- releasing holes
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Abandoned
Links
- 230000005855 radiation Effects 0.000 claims abstract description 129
- 229910052751 metal Inorganic materials 0.000 claims description 20
- 239000002184 metal Substances 0.000 claims description 20
- 239000011347 resin Substances 0.000 claims description 17
- 229920005989 resin Polymers 0.000 claims description 17
- 238000000151 deposition Methods 0.000 claims description 3
- 238000009825 accumulation Methods 0.000 description 10
- 238000010586 diagram Methods 0.000 description 9
- 230000004048 modification Effects 0.000 description 8
- 238000012986 modification Methods 0.000 description 8
- 239000000758 substrate Substances 0.000 description 8
- 239000004973 liquid crystal related substance Substances 0.000 description 5
- 229910052782 aluminium Inorganic materials 0.000 description 3
- XAGFODPZIPBFFR-UHFFFAOYSA-N aluminium Chemical compound [Al] XAGFODPZIPBFFR-UHFFFAOYSA-N 0.000 description 3
- 230000003287 optical effect Effects 0.000 description 3
- 239000004925 Acrylic resin Substances 0.000 description 1
- 229920000178 Acrylic resin Polymers 0.000 description 1
- JOYRKODLDBILNP-UHFFFAOYSA-N Ethyl urethane Chemical compound CCOC(N)=O JOYRKODLDBILNP-UHFFFAOYSA-N 0.000 description 1
- 239000002390 adhesive tape Substances 0.000 description 1
- 238000005452 bending Methods 0.000 description 1
- 239000003610 charcoal Substances 0.000 description 1
- 210000002858 crystal cell Anatomy 0.000 description 1
- 239000006260 foam Substances 0.000 description 1
- 239000000463 material Substances 0.000 description 1
- 239000007769 metal material Substances 0.000 description 1
- 230000035939 shock Effects 0.000 description 1
Images
Classifications
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- F21V29/2293—
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N5/00—Details of television systems
- H04N5/64—Constructional details of receivers, e.g. cabinets or dust covers
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B6/00—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
- G02B6/0001—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings specially adapted for lighting devices or systems
- G02B6/0011—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings specially adapted for lighting devices or systems the light guides being planar or of plate-like form
- G02B6/0013—Means for improving the coupling-in of light from the light source into the light guide
- G02B6/0023—Means for improving the coupling-in of light from the light source into the light guide provided by one optical element, or plurality thereof, placed between the light guide and the light source, or around the light source
- G02B6/0031—Reflecting element, sheet or layer
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B6/00—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
- G02B6/0001—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings specially adapted for lighting devices or systems
- G02B6/0011—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings specially adapted for lighting devices or systems the light guides being planar or of plate-like form
- G02B6/0081—Mechanical or electrical aspects of the light guide and light source in the lighting device peculiar to the adaptation to planar light guides, e.g. concerning packaging
- G02B6/0085—Means for removing heat created by the light source from the package
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- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K7/00—Constructional details common to different types of electric apparatus
- H05K7/20—Modifications to facilitate cooling, ventilating, or heating
- H05K7/20954—Modifications to facilitate cooling, ventilating, or heating for display panels
- H05K7/20963—Heat transfer by conduction from internal heat source to heat radiating structure
Definitions
- the present invention relates to a display device, and more particularly, it relates to a display device including a heat radiation member.
- a display device including a heat radiation member is known in general, as disclosed in Japanese Patent Laying-Open No. 2006-235093, for example.
- the aforementioned Japanese Patent Laying-Open No. 2006-235093 discloses a display device including a liquid crystal panel (display portion) displaying an image on the front side and a light guide plate arranged on the rear side of the liquid crystal panel, guiding backlight emitted from a light-emitting diode (light source) to the liquid crystal panel.
- This display device further includes a heat radiation member arranged on the rear side of the light guide plate, radiating the heat of the light-emitting diode and a reflective sheet arranged between the light guide plate and the heat radiation member.
- the heat radiated from the heat radiation member is transferred to the light guide plate through the reflective sheet, whereby the shape of the heat radiation member may be reflected in a display surface of the liquid crystal panel, and hence a user may visually recognize the shape of the heat radiation member. Therefore, the display quality of the display device is disadvantageously reduced by the heat radiated from the heat radiation member.
- the present invention has been proposed in order to solve the aforementioned problem, and an object of the present invention is to provide a display device capable of suppressing a reduction in the display quality thereof resulting from heat radiated from the heat radiation member.
- a display device includes a display portion displaying an image on the front side, a light guide plate arranged on the rear side of the display portion, guiding backlight emitted from a light source to the display portion, a heat radiation member arranged on the rear side of the light guide plate, radiating the heat of the light source, and a reflective sheet arranged between the light guide plate and the heat radiation member, including a heat reflecting portion capable of reflecting the heat radiated from the heat radiation member to the heat radiation member on the rear side, while the heat radiation member includes a heat releasing portion configured to release the heat reflected by the heat reflecting portion to the rear side of the heat radiation member.
- the reflective sheet arranged between the light guide plate and the heat radiation member, including the heat reflecting portion capable of reflecting the heat radiated from the heat radiation member to the heat radiation member on the rear side is provided, and the heat radiation member includes the heat releasing portion configured to release the heat reflected by the heat reflecting portion to the rear side of the heat radiation member, whereby accumulation of the heat reflected by the heat reflecting portion between the heat reflecting portion (reflective sheet) and the heat radiation member can be suppressed by releasing the heat reflected by the heat reflecting portion to the rear side of the heat radiation member while the heat reflecting portion suppresses transfer of the heat radiated from the heat radiation member to the light guide plate on the front side through the reflective sheet.
- a user can be suppressed from visually recognizing the shape of the heat radiation member due to the heat radiated from the heat radiation member. Consequently, a reduction in the display quality of the display device resulting from the heat radiated from the heat radiation member can be suppressed.
- the heat releasing portion preferably includes a heat releasing hole that is a through-hole. According to this structure, the heat releasing hole serving as the heat releasing portion can be easily provided.
- the heat releasing portion of the heat radiation member preferably includes a plurality of heat releasing holes, the plurality of heat releasing holes are preferably formed at positions of the reflective sheet opposed to the heat reflecting portion, and the heat reflected to the heat radiation member by the heat reflecting portion is preferably released to the rear side of the heat radiation member through the plurality of heat releasing holes.
- the heat reflected to the heat radiation member by the heat reflecting portion can be easily released to the rear side of the heat radiation member through the plurality of heat releasing holes, and hence the accumulation of the heat reflected by the heat reflecting portion between the heat reflecting portion (reflective sheet) and the heat radiation member can be easily suppressed.
- the plurality of heat releasing holes are preferably arranged such that the centers thereof are spaced from each other at a substantially equal distance. According to this structure, the plurality of heat releasing holes are arranged in a balanced manner, and the heat reflected by the heat reflecting portion is released to the rear side of the heat radiation member, whereby the accumulation of the heat reflected by the heat reflecting portion between the heat reflecting portion and the heat radiation member can be effectively suppressed.
- the heat releasing holes of the heat radiation member are preferably formed such that the opening density of the heat releasing holes is increased as the distance of the heat releasing holes from the light source is increased.
- the heat of the light source can be efficiently absorbed by the heat radiation member in a region where the distance of the heat releasing holes from the light source is relatively small, and the heat reflected to the heat radiation member by the heat reflecting portion can be efficiently released to the rear side of the heat radiation member through the heat releasing holes in a region where the distance of the heat releasing holes from the light source is relatively large.
- the reduction in the display quality of the display device resulting from the heat radiated from the heat radiation member can be suppressed while the light source is efficiently cooled.
- the heat releasing holes of the heat radiation member are preferably formed such that the total opening area of the heat releasing holes is increased as the distance of the heat releasing holes from the light source is increased.
- the opening density can be easily increased as the distance of the heat releasing holes from the light source is increased, and hence the heat of the light source can be easily, efficiently absorbed by the heat radiation member in the region where the distance of the heat releasing holes from the light source is relatively small, and the heat reflected to the heat radiation member by the heat reflecting portion can be easily, efficiently released to the rear side of the heat radiation member through the heat releasing holes in the region where the distance of the heat releasing holes from the light source is relatively large.
- the inner diameter of the plurality of heat releasing holes is preferably increased as the distance of the heat releasing holes from the light source is increased. According to this structure, the inner diameter of the heat releasing holes is increased, whereby the opening density can be easily increased.
- the heat radiation member is preferably formed of a plate-like metal member, and the heat releasing hole is preferably formed in the heat radiation member that is plate-like. According to this structure, the heat of the light source can be efficiently radiated by the heat radiation member formed of the plate-like metal member, and the heat releasing hole can be easily formed in the heat radiation member that is plate-like.
- the heat radiation member and the heat reflecting portion of the reflective sheet are preferably arranged in a state where the heat radiation member and the heat reflecting portion of the reflective sheet are separated from each other at a prescribed interval in an anteroposterior direction, and the heat radiation member is preferably configured to release the heat reflected by the heat reflecting portion to the rear side through the heat releasing holes.
- the heat radiation member and the heat reflecting portion are in direct contact with each other, heat is radiated from the heat radiation member to the heat reflecting portion through air between the heat radiation member and the heat reflecting portion, and hence the heat of the heat radiation member is hardly directly transferred to the heat reflecting portion.
- the display device preferably further includes a rear frame arranged on the rear side of the heat radiation member, and the heat released to the rear side through the heat releasing holes is preferably radiated through the rear frame. According to this structure, the heat released to the rear side through the heat releasing holes can be easily radiated through the rear frame.
- the aforementioned display device preferably further includes a rear frame made of resin, arranged on the rear side of the heat radiation member, and the rear frame is preferably configured such that the inner surface thereof is blackish colored.
- the heat released to the rear side of the heat radiation member can be efficiently absorbed by the blackish colored rear frame.
- the accumulation of the heat reflected by the heat reflecting portion between the heat reflecting portion (reflective sheet) and the heat radiation member can be effectively suppressed.
- the reflective sheet is preferably made of resin, and a heat reflecting layer made of metal, capable of reflecting the heat radiated from the heat radiation member to the heat radiation member is preferably formed on the rear side of the reflective sheet.
- a heat reflecting layer made of metal capable of reflecting the heat radiated from the heat radiation member to the heat radiation member
- the reflective sheet formed with the heat reflecting layer on the rear side is provided, whereby the number of components can be reduced, unlike the case where a dedicated heat reflecting portion is separately provided.
- the heat reflecting layer is preferably formed of a tape member made of metal or formed by depositing metal on the reflective sheet. According to this structure, the heat reflecting layer can be thinned, and hence an increase in the thickness of the display device in the anteroposterior direction can be suppressed.
- a plurality of light sources are preferably arranged to be opposed to a side surface of the light guide plate serving as a light incident surface
- the heat reflecting portion is preferably formed from a region corresponding to an end of a first side along the light incident surface in a direction in which the light source is arranged to a region corresponding to an end of the second side along the light incident surface in the reflective sheet.
- the heat reflecting portion can be provided in a region in the vicinity of the light sources where the temperature of the heat radiation member is easily increased, and hence the transfer of the heat radiated from the heat radiation member to the display portion can be effectively suppressed by the heat reflecting portion.
- the heat releasing holes of the heat radiation member are preferably formed such that the total opening area of the heat releasing holes is reduced as the distance of the heat releasing holes from the light source is increased.
- the heat reflected to the heat radiation member by the heat reflecting portion can be promptly released to the rear side of the heat radiation member through the heat releasing holes in the vicinity of the light source, and hence the amount of heat diffusing to a region of the heat radiation member corresponding to the central side of the display portion is reduced, so that accumulation of heat in the region of the heat radiation member corresponding to the central side of the display portion can be suppressed. Consequently, a reduction in the display quality of a central region of the display device can be further suppressed.
- the heat radiation member is preferably arranged to overlap with the heat reflecting portion of the reflective sheet. According to this structure, the heat reflected by the heat reflecting portion can be efficiently radiated from the heat radiation member.
- the heat radiation member is arranged to overlap with the heat reflecting portion of the reflective sheet
- at least the heat releasing portion of the heat radiation member is preferably formed in the heat radiation member to overlap with the heat reflecting portion of the reflective sheet. According to this structure, the heat reflected by the heat reflecting portion can be efficiently released to the rear side of the heat radiation member.
- an interval between the heat radiation member and a flat portion of the rear frame is preferably larger than an interval between the heat radiation member and the reflective sheet. According to this structure, the heat reflected by the heat reflecting portion can be suppressed from staying between the heat radiation member and the rear frame.
- the aforementioned display device is preferably a television set including a receiver receiving television broadcasting.
- the present invention is also applicable to the television set.
- the reduction in the display quality of the display device resulting from the heat radiated from the heat radiation member can be suppressed.
- FIG. 1 is a diagram showing the overall structure of a TV according to an embodiment of the present invention
- FIG. 2 is a diagram showing a heat sink fixed to a rear frame of the TV according to the embodiment of the present invention
- FIG. 3 is a diagram showing the heat sink of the TV according to the embodiment of the present invention.
- FIG. 4 is a diagram showing a heat reflecting portion of the TV according to the embodiment of the present invention.
- FIG. 5 is a sectional view taken along the line 500 - 500 in FIG. 1 ;
- FIG. 6 is a diagram showing the heat sink and the heat reflecting portion of the TV according to the embodiment of the present invention.
- FIG. 7 is a diagram showing a heat sink of a TV according to a first modification of the embodiment of the present invention.
- FIG. 8 is a diagram showing a heat sink of a TV according to a second modification of the embodiment of the present invention.
- FIG. 9 is a diagram showing a heat sink of a TV according to a third modification of the embodiment of the present invention.
- FIG. 10 is a diagram showing a heat reflecting portion of a TV according to a fourth modification of the embodiment of the present invention.
- the structure of a TV (television set) 100 according to the embodiment of the present invention is now described with reference to FIGS. 1 to 6 .
- the TV 100 is an example of the “display device” in the present invention.
- the TV 100 includes a front frame 1 having an opening 1 a and a rear frame 2 (see FIG. 2 ), as shown in FIG. 1 .
- An antireflection sheet 11 (display portion 10 ) is exposed from the opening 1 a of the front frame 1 .
- the TV 100 is configured to be capable of receiving a broadcast signal through a receiving portion 20 .
- a heat sink 3 and an LED module 4 including a plurality of LEDs 42 are provided, as shown in FIGS. 5 and 6 .
- a cushion 5 , a reflective sheet 6 , a light guide plate 7 , and an optical sheet 8 are stacked sequentially from the rear side (X 2 side).
- a resin frame 9 is arranged on the front side of an LED substrate 41 .
- the display portion 10 and the antireflection sheet 11 are arranged in this order.
- the LEDs 42 are examples of the “light source” in the present invention.
- the rear frame 2 is arranged on the rear side (X 2 side) of the heat sink 3 , as shown in FIGS. 2 , 5 , and 6 .
- a rib-like restriction portion 21 (see FIG. 2 ) restricting movement of the heat sink 3 along arrow Y 1 is formed.
- the rear frame 2 is made of black resin such that the inner surface thereof on the X 1 side is black. This black resin can efficiently absorb heat transferred as an infrared ray (electromagnetic wave).
- the heat sink 3 is an example of the “heat radiation member” in the present invention.
- the heat sink 3 is arranged on the rear side (X 2 side) of the light guide plate 7 , as shown in FIGS. 2 , 5 , and 6 .
- the rear frame 2 is arranged on the rear side of the heat sink 3 .
- the heat sink 3 has a function of radiating the heat of the LEDs 42 .
- the heat sink 3 is made of a plate-like metal material of aluminum or the like, for example.
- the heat sink 3 includes a heat sink body portion 31 and an LED substrate fixing portion 32 , as shown in FIGS. 2 , 3 , 5 , and 6 .
- the heat sink body portion 31 is flattened to extend in a Y-Z direction.
- the LED substrate fixing portion 32 is formed by substantially vertically bending a part of the heat sink 3 on the Y 1 side to the front side (X 1 side).
- the heat sink 3 is formed in a shape corresponding to a partial region of the light guide plate 7 on the Y 1 side, as shown in FIG. 2 . Specifically, the heat sink 3 is formed from a region in the vicinity of an end 7 a of the light guide plate 7 on a first side (Z 1 side) along a light incident surface 71 to a region in the vicinity of an end 7 b of the light guide plate 7 on a second side (Z 2 side) along the light incident surface 71 .
- the heat sink 3 has a schematically rectangular shape in a plan view, as viewed in a direction X.
- the heat sink 3 includes a plurality of heat releasing holes 33 configured to release heat reflected by a heat reflecting portion 61 described later to the rear side (X 2 side) of the heat sink 3 , as shown in FIGS. 2 and 3 .
- the heat released to the rear side through the heat releasing holes 33 is radiated in the air through the rear frame 2 .
- the heat releasing holes 33 are through-holes formed in the heat sink 3 .
- the heat releasing holes 33 are formed in the heat sink 3 to overlap with the reflective sheet 6 (heat reflecting portion 61 ).
- the opening density (the rate of the opening area of the heat releasing holes 33 per unit area) of the heat releasing holes 33 is increased as the distance of the heat releasing holes 33 from the LEDs 42 is increased.
- the inner diameter of heat releasing holes 33 closer to the Y 1 side is relatively small, and the inner diameter of heat releasing holes 33 closer to the Y 2 side is relatively large.
- the inner diameter of the heat releasing holes 33 is increased as the distance of the heat releasing holes 33 from the LEDs 42 is increased.
- the total opening area of the heat releasing holes 33 arranged along a direction Z at each position (in the direction Y) is increased.
- the opening area (inner diameter) of the heat releasing holes 33 is gradually increased.
- the heat releasing holes 33 each are formed in a substantially circular shape.
- the plurality of heat releasing holes 33 are arranged substantially linearly along the direction Z.
- the plurality of heat releasing holes 33 are arranged substantially linearly along the direction Y.
- the plurality of heat releasing holes 33 are arranged at prescribed distances D.
- the plurality of heat releasing holes 33 are arranged such that central portions C of the heat releasing holes 33 are spaced from each other at the equal distances D, as shown in FIG. 2 .
- the heat releasing holes 33 are examples of the “heat releasing portion” in the present invention.
- the heat sink 3 is provided with a pair of protrusion portions 34 configured to position the reflective sheet 6 and the light guide plate 7 , as shown in FIG. 2 .
- the protrusion portions 34 are provided on the Z 1 side and the Z 2 side of the heat sink 3 , respectively.
- the protrusion portions 34 are formed to protrude to the X 1 side.
- An interval between the heat sink 3 and a flat portion (a portion substantially parallel to the reflective sheet 6 ) of the rear frame 2 is larger than an interval between the heat sink 3 and the reflective sheet 6 .
- the LED module 4 includes the LED substrate 41 and the plurality of LEDs 42 mounted on the LED substrate 41 , as shown in FIG. 2 .
- the plurality of LEDs 42 are arranged to be opposed to the light incident surface 71 of the light guide plate 7 .
- the LEDs 42 are configured to supply light to the display portion 10 through the light guide plate 7 .
- the LED module 4 is arranged on the right side (Y 1 side) when the TV 100 (see FIG. 1 ) is viewed from the front side, as shown in FIGS. 2 , 5 , and 6 .
- the LED module 4 is configured such that the LED substrate 41 is fixed to a surface on the Y 2 side of the LED substrate fixing portion 32 of the heat sink 3 by a double-faced adhesive tape (not shown).
- the cushion 5 is arranged on the front side (X 1 side) of the heat sink 3 , as shown in FIGS. 5 and 6 .
- the cushion 5 is configured such that the section thereof in the direction Z has a substantially rectangular shape.
- the cushion 5 is configured to support the light guide plate 7 facing the front side (X 1 side). Furthermore, the cushion 5 is arranged at a prescribed interval from the LED substrate fixing portion 32 of the heat sink 3 , as shown in FIGS. 5 and 6 .
- the cushion 5 is made of a material (urethane foam or the like, for example) absorbing a shock.
- the reflective sheet 6 is arranged on the X 2 side of the light guide plate 7 , as shown in FIGS. 4 to 6 .
- the reflective sheet 6 has a function of suppressing light leakage to the rear side (X 2 side) of the light guide plate 7 .
- the reflective sheet 6 is formed in a shape corresponding to that of the light guide plate 7 .
- the reflective sheet 6 is made of resin.
- the reflective sheet 6 is arranged between the light guide plate 7 and the heat sink 3 and includes the heat reflecting portion (stratified heat reflecting layer) 61 capable of reflecting heat radiated from the heat sink 3 to the heat sink 3 on the rear side (X 2 side), as shown in FIGS. 5 and 6 .
- the heat reflecting portion 61 and the heat sink 3 are arranged in a state where the same are separated from each other at a prescribed interval in an anteroposterior direction (direction X).
- the reflective sheet 6 has a pair of positioning portions 62 in a vertical direction (direction Z), as shown in FIG. 4 .
- the positioning portions 62 are formed at positions corresponding to the protrusion portions (see FIG. 2 ) of the heat sink 3 .
- the positioning portions 62 engage with the protrusion portions 34 of the heat sink 3 , whereby the reflective sheet 6 is arranged at a prescribed position.
- the heat reflecting portion 61 roughly has a substantially rectangular shape in a plan view, as shown in FIG. 4 .
- the heat reflecting portion 61 is formed from a region corresponding to an end 6 b of a first side (Z 2 side) along a side surface 6 a in a direction (direction Z) in which the LEDs 42 are arranged to a region corresponding to an end 6 c of a second side (Z 1 side) along the side surface 6 a in the reflective sheet 6 .
- the heat reflecting portion 61 is arranged in the vicinity of the light incident surface 71 (see FIG. 6 ), as shown in FIGS. 2 and 6 .
- the heat reflecting portion 61 is formed in a shape corresponding to that of the heat sink 3 , as shown in FIGS. 3 and 4 .
- the heat sink 3 is arranged to overlap with the heat reflecting portion 61 of the reflective sheet 6 .
- the plurality of heat releasing holes 33 are formed at positions of the heat sink 3 opposed to the heat reflecting portion 61 .
- the heat reflected to the heat sink 3 by the heat reflecting portion 61 is released from the plurality of heat releasing holes 33 to the rear side (X 2 side) of the heat sink 3 .
- the heat reflecting portion 61 is provided by applying a tape made of metal (aluminum, for example) to the rear side of the reflective sheet 6 , as shown in FIGS. 4 to 6 .
- the heat reflecting portion 61 may be formed of a heat reflecting layer of metal formed by depositing metal on the rear side of the reflective sheet 6 .
- the light guide plate 7 is schematically formed in a substantially rectangular shape, as shown in FIGS. 1 and 2 .
- the light guide plate 7 is arranged on the rear side (X 2 side) of the display portion 10 and has a function of guiding backlight emitted from the LEDs 42 to the display portion 10 .
- the light guide plate 7 is configured such that the light incident surface 71 receiving light emitted from the LEDs 42 is opposed to the LEDs 42 , as shown in FIG. 6 .
- the light guide plate 7 is made of resin (acrylic resin, for example).
- the light guide plate 7 has a pair of positioning portions 72 in the vertical direction (direction Z), as shown in FIG. 2 .
- the positioning portions 72 are formed at positions corresponding to the protrusion portions 34 of the heat sink 3 .
- the positioning portions 72 engage with the protrusion portions 34 , whereby the light guide plate 7 is arranged at a prescribed position.
- the optical sheet 8 is provided on the front side (X 1 side) of the light guide plate 7 , as shown in FIGS. 5 and 6 .
- the optical sheet 8 has a function of efficiently transferring light emitted from the light guide plate 7 to the display portion 10 .
- the resin frame 9 is configured to fix the light guide plate 7 to a prescribed position, as shown in FIGS. 5 and 6 .
- the display portion 10 (see FIG. 6 ) is configured to display an image on the front side (X 1 side).
- the display portion 10 is mainly constituted by a liquid crystal cell.
- the antireflection sheet 11 is arranged, as shown in FIGS. 5 and 6 .
- the reflective sheet 6 including the heat reflecting portion 61 capable of reflecting the heat radiated from the heat sink 3 to the heat sink 3 on the rear side is arranged between the light guide plate 7 and the heat sink 3
- the heat sink 3 includes the heat releasing holes 33 configured to release the heat reflected by the heat reflecting portion 61 to the rear side of the heat sink 3 , whereby accumulation of the heat reflected by the heat reflecting portion 61 between the heat reflecting portion 61 (reflective sheet 6 ) and the heat sink 3 can be suppressed by releasing the heat reflected by the heat reflecting portion 61 to the rear side of the heat sink 3 while the heat reflecting portion 61 suppresses transfer of the heat radiated from the heat sink 3 to the light guide plate 7 through the reflective sheet 6 .
- the heat releasing holes 33 include the through-holes.
- the heat releasing holes 33 can be easily provided.
- the plurality of heat releasing holes 33 are formed at the positions of the reflective sheet 6 opposed to the heat reflecting portion 61 , and the heat sink 3 is configured to release heat to the rear side of the heat sink 3 through the plurality of heat releasing holes 33 , whereby the heat reflected to the heat sink 3 by the heat reflecting portion 61 can be easily released to the rear side of the heat sink 3 through the plurality of heat releasing holes 33 , and hence the accumulation of the heat reflected by the heat reflecting portion 61 between the heat reflecting portion 61 (reflective sheet 6 ) and the heat sink 3 can be easily suppressed.
- the plurality of heat releasing holes 33 are arranged such that the central portions C of the plurality of heat releasing holes 33 are spaced from each other at the substantially equal distances D.
- the plurality of heat releasing holes 33 are arranged in a balanced manner, and the heat reflected by the heat reflecting portion 61 is released to the rear side of the heat sink 3 , whereby the accumulation of the heat reflected by the heat reflecting portion 61 between the heat reflecting portion 61 and the heat sink 3 can be effectively suppressed.
- the opening density of the heat releasing holes 33 of the heat sink 3 is increased as the distance of the heat releasing holes 33 from the LEDs 42 is increased.
- the heat of the LEDs 42 can be efficiently absorbed by the heat sink 3 in a region where the distance of the heat releasing holes 33 from the LEDs 42 is relatively small, and the heat reflected to the heat sink 3 by the heat reflecting portion 61 can be efficiently released to the rear side of the heat sink 3 through the heat releasing holes 33 in a region where the distance of the heat releasing holes 33 from the LEDs 42 is relatively large.
- the reduction in the display quality of the TV 100 resulting from the heat radiated from the heat sink 3 can be suppressed while the LEDs 42 are efficiently cooled.
- the heat releasing holes 33 are formed such that the total opening area is increased as the distance of the heat releasing holes 33 from the LEDs 42 is increased, whereby the opening density can be easily increased as the distance of the heat releasing holes 33 from the LEDs 42 is increased.
- the heat of the LEDs 42 can be easily, efficiently absorbed by the heat sink 3 in the region where the distance of the heat releasing holes 33 from the LEDs 42 is relatively small, and the heat reflected to the heat sink 3 by the heat reflecting portion 61 can be easily, efficiently released to the rear side of the heat sink 3 through the heat releasing holes 33 in the region where the distance of the heat releasing holes 33 from the LEDs 42 is relatively large. Therefore, the reduction in the display quality of the TV 100 resulting from the heat radiated from the heat sink 3 can be suppressed while the LEDs 42 are efficiently cooled.
- the inner diameter of the plurality of heat releasing holes 33 is increased as the distance of the heat releasing holes 33 from the LEDs 42 is increased.
- the inner diameter of the heat releasing holes 33 is increased, whereby the opening density can be easily increased.
- the heat sink 3 is formed of a plate-like metal member, and the heat releasing holes 33 are formed in the plate-like heat sink 3 .
- the heat of the LEDs 42 can be efficiently radiated by the heat sink 3 formed of the plate-like metal member, and the heat releasing holes 33 can be easily formed in the plate-like heat sink 3 .
- the heat sink 3 and the heat reflecting portion 61 of the reflective sheet 6 are arranged in the state where the same are separated from each other at the prescribed interval in the anteroposterior direction, and the heat sink 3 is configured to release the heat reflected by the heat reflecting portion 61 to the rear side through the heat releasing holes 33 , whereby heat is radiated from the heat sink 3 to the heat reflecting portion 61 through air between the heat sink 3 and the heat reflecting portion 61 , and hence the heat of the heat sink 3 is hardly directly transferred to the heat reflecting portion 61 .
- the rear frame 2 arranged on the rear side of the heat sink 3 is provided, and the heat released to the rear side through the heat releasing holes 33 is radiated through the rear frame 2 .
- the heat released to the rear side through the heat releasing holes 33 can be easily radiated through the rear frame 2 .
- the rear frame 2 made of resin whose inner surface is black is arranged on the rear side of the heat sink 3 , whereby the heat released to the rear side of the heat sink 3 can be efficiently absorbed by the rear frame 2 .
- the accumulation of the heat reflected by the heat reflecting portion 61 between the heat reflecting portion 61 (reflective sheet 6 ) and the heat sink 3 can be effectively suppressed.
- the heat reflecting layer made of metal is formed on the rear side of the reflective sheet 6 made of resin, whereby transfer of the heat radiated from the heat sink 3 to the display portion 10 can be easily suppressed by the heat reflecting layer made of metal even in the case where the reflective sheet 6 is made of resin.
- the heat reflecting portion (heat reflecting layer) 61 is formed of a tape member made of metal (aluminum).
- the heat reflecting portion (heat reflecting layer) 61 can be thinned, and hence an increase in the thickness of the TV 100 in the anteroposterior direction can be suppressed.
- the plurality of LEDs 42 are arranged to be opposed to the light incident surface 71 of the light guide plate 7 , and the heat reflecting portion 61 is formed from the region corresponding to the end 6 b of the first side along the light incident surface 71 to the region corresponding to the end 6 c of the second side along the light incident surface 71 , whereby the heat reflecting portion 61 can be provided in a region in the vicinity of the LEDs 42 where the temperature of the heat sink 3 is easily increased, and hence the transfer of the heat radiated from the heat sink 3 to the display portion 10 can be effectively suppressed by the heat reflecting portion 61 .
- the heat sink 3 is arranged to overlap with the heat reflecting portion 61 of the reflective sheet 6 .
- the heat reflected by the heat reflecting portion 61 can be efficiently radiated from the heat sink 3 .
- the heat releasing holes 33 of the heat sink 3 are formed in the heat sink 3 to overlap with the heat reflecting portion 61 of the reflective sheet 6 .
- the heat reflected by the heat reflecting portion 61 can be efficiently released to the rear side of the heat sink 3 .
- the interval between the heat sink 3 and the flat portion of the rear frame 2 is larger than the interval between the heat sink 3 and the reflective sheet 6 .
- the heat reflected by the heat reflecting portion 61 can be suppressed from staying between the heat sink 3 and the rear frame 2 .
- the present invention is applied to the TV (television set) as the display device in the aforementioned embodiment, the present invention is not restricted to this.
- the present invention is also applicable to another display device, such as a monitor of a PC (personal computer).
- the present invention is not restricted to this.
- the total opening area of heat releasing holes 233 of a heat radiation member 203 may alternatively be increased as the distance of the heat releasing holes 233 from a light source (LEDs 42 ) is increased by forming the heat radiation member 203 such that the inner diameter of the heat releasing holes 233 is constant but the number of the heat releasing holes 233 is increased as the distance of the heat releasing holes 233 from the light source is increased, as in a first modification shown in FIG. 7 .
- the heat of the light source can be efficiently absorbed by the heat radiation member 203 simply by varying the arrangement of the heat releasing holes 233 without varying the inner diameter of the heat releasing holes 233 , and heat reflected to the heat radiation member 203 by a heat reflecting portion can be efficiently released to the rear side of the heat radiation member 203 through the heat releasing holes 233 in a region where the distance of the heat releasing holes 233 from the light source is relatively large.
- the total opening area of heat releasing holes 333 of a heat radiation member 303 may alternatively be substantially constant by forming the heat radiation member 303 such that the inner diameter of the heat releasing holes 333 is constant and the number of the heat releasing holes 333 is constant (the ratio of distribution of the heat releasing holes 333 is constant) even if the distance of the heat releasing holes 333 from a light source is increased, as in a second modification shown in FIG. 8 .
- the arrangement of the heat releasing holes 333 may not be complicated, and hence the heat radiation member 303 including the heat releasing holes 333 can be easily formed.
- the total opening area of heat releasing holes 433 of a heat radiation member 403 may alternatively be reduced as the distance of the heat releasing holes 433 from a light source is increased.
- heat reflected to the heat radiation member 403 by a heat reflecting portion can be promptly released to the rear side of the heat radiation member 403 through the heat releasing holes 433 in the vicinity of the light source, and hence the amount of heat diffusing to a region of the heat radiation member 403 corresponding to the central side of a display portion is reduced, so that accumulation of heat in the region of the heat radiation member 403 corresponding to the central side of the display portion can be suppressed. Consequently, a reduction in the display quality of a central region of a display device can be further suppressed.
- the present invention is not restricted to this.
- the heat radiation member and the heat reflecting portion may alternatively be arranged in a state where the same come into close contact with each other in the anteroposterior direction.
- an increase in the thickness of the display device in the anteroposterior direction can be suppressed.
- the present invention is not restricted to this. According to the present invention, a rear frame whose inner surface is blackish colored (charcoal gray or the like, for example) may alternatively be provided.
- the rear frame 2 is made of resin in the aforementioned embodiment, the present invention is not restricted to this. According to the present invention, the rear frame may alternatively be made of metal. Thus, heat released to the rear side of the heat radiation member can be easily absorbed by the rear frame and radiated to the outside.
- the reflective sheet 6 is made of resin in the aforementioned embodiment, the present invention is not restricted to this. According to the present invention, the reflective sheet may alternatively be made of metal.
- a heat reflecting portion may alternatively be formed on the entire surface of a reflective sheet 506 on the rear side, as in a fourth embodiment shown in FIG. 10 .
- the present invention is not restricted to this. According to the present invention, a heat radiation member in a shape corresponding to a substantially entire region of the light guide plate may alternatively be provided.
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Abstract
A display device includes a display portion displaying an image on the front side, a light guide plate arranged on the rear side of the display portion, a heat radiation member arranged on the rear side of the light guide plate, radiating the heat of the light source, and a reflective sheet arranged between the light guide plate and the heat radiation member, including a heat reflecting portion capable of reflecting the heat radiated from the heat radiation member to the heat radiation member on the rear side, while the heat radiation member includes a heat releasing portion configured to release the heat reflected by the heat reflecting portion to the rear side of the heat radiation member.
Description
- 1. Field of the Invention
- The present invention relates to a display device, and more particularly, it relates to a display device including a heat radiation member.
- 2. Description of the Background Art
- A display device including a heat radiation member is known in general, as disclosed in Japanese Patent Laying-Open No. 2006-235093, for example.
- The aforementioned Japanese Patent Laying-Open No. 2006-235093 discloses a display device including a liquid crystal panel (display portion) displaying an image on the front side and a light guide plate arranged on the rear side of the liquid crystal panel, guiding backlight emitted from a light-emitting diode (light source) to the liquid crystal panel. This display device further includes a heat radiation member arranged on the rear side of the light guide plate, radiating the heat of the light-emitting diode and a reflective sheet arranged between the light guide plate and the heat radiation member.
- In the display device according to the aforementioned Japanese Patent Laying-Open No. 2006-235093, however, the heat radiated from the heat radiation member is transferred to the light guide plate through the reflective sheet, whereby the shape of the heat radiation member may be reflected in a display surface of the liquid crystal panel, and hence a user may visually recognize the shape of the heat radiation member. Therefore, the display quality of the display device is disadvantageously reduced by the heat radiated from the heat radiation member.
- The present invention has been proposed in order to solve the aforementioned problem, and an object of the present invention is to provide a display device capable of suppressing a reduction in the display quality thereof resulting from heat radiated from the heat radiation member.
- A display device according to an aspect of the present invention includes a display portion displaying an image on the front side, a light guide plate arranged on the rear side of the display portion, guiding backlight emitted from a light source to the display portion, a heat radiation member arranged on the rear side of the light guide plate, radiating the heat of the light source, and a reflective sheet arranged between the light guide plate and the heat radiation member, including a heat reflecting portion capable of reflecting the heat radiated from the heat radiation member to the heat radiation member on the rear side, while the heat radiation member includes a heat releasing portion configured to release the heat reflected by the heat reflecting portion to the rear side of the heat radiation member.
- In the display device according to the aspect of the present invention, as hereinabove described, the reflective sheet arranged between the light guide plate and the heat radiation member, including the heat reflecting portion capable of reflecting the heat radiated from the heat radiation member to the heat radiation member on the rear side is provided, and the heat radiation member includes the heat releasing portion configured to release the heat reflected by the heat reflecting portion to the rear side of the heat radiation member, whereby accumulation of the heat reflected by the heat reflecting portion between the heat reflecting portion (reflective sheet) and the heat radiation member can be suppressed by releasing the heat reflected by the heat reflecting portion to the rear side of the heat radiation member while the heat reflecting portion suppresses transfer of the heat radiated from the heat radiation member to the light guide plate on the front side through the reflective sheet. Thus, a user can be suppressed from visually recognizing the shape of the heat radiation member due to the heat radiated from the heat radiation member. Consequently, a reduction in the display quality of the display device resulting from the heat radiated from the heat radiation member can be suppressed.
- In the aforementioned display device according to the aspect, the heat releasing portion preferably includes a heat releasing hole that is a through-hole. According to this structure, the heat releasing hole serving as the heat releasing portion can be easily provided.
- In this case, the heat releasing portion of the heat radiation member preferably includes a plurality of heat releasing holes, the plurality of heat releasing holes are preferably formed at positions of the reflective sheet opposed to the heat reflecting portion, and the heat reflected to the heat radiation member by the heat reflecting portion is preferably released to the rear side of the heat radiation member through the plurality of heat releasing holes. According to this structure, the heat reflected to the heat radiation member by the heat reflecting portion can be easily released to the rear side of the heat radiation member through the plurality of heat releasing holes, and hence the accumulation of the heat reflected by the heat reflecting portion between the heat reflecting portion (reflective sheet) and the heat radiation member can be easily suppressed.
- In the aforementioned structure including the plurality of heat releasing holes, the plurality of heat releasing holes are preferably arranged such that the centers thereof are spaced from each other at a substantially equal distance. According to this structure, the plurality of heat releasing holes are arranged in a balanced manner, and the heat reflected by the heat reflecting portion is released to the rear side of the heat radiation member, whereby the accumulation of the heat reflected by the heat reflecting portion between the heat reflecting portion and the heat radiation member can be effectively suppressed.
- In the aforementioned structure including the plurality of heat releasing holes, the heat releasing holes of the heat radiation member are preferably formed such that the opening density of the heat releasing holes is increased as the distance of the heat releasing holes from the light source is increased. According to this structure, the heat of the light source can be efficiently absorbed by the heat radiation member in a region where the distance of the heat releasing holes from the light source is relatively small, and the heat reflected to the heat radiation member by the heat reflecting portion can be efficiently released to the rear side of the heat radiation member through the heat releasing holes in a region where the distance of the heat releasing holes from the light source is relatively large. Thus, the reduction in the display quality of the display device resulting from the heat radiated from the heat radiation member can be suppressed while the light source is efficiently cooled.
- In the aforementioned structure in which the heat releasing holes are formed such that the opening density of the heat releasing holes is increased as the distance of the heat releasing holes from the light source is increased, the heat releasing holes of the heat radiation member are preferably formed such that the total opening area of the heat releasing holes is increased as the distance of the heat releasing holes from the light source is increased. According to this structure, the opening density can be easily increased as the distance of the heat releasing holes from the light source is increased, and hence the heat of the light source can be easily, efficiently absorbed by the heat radiation member in the region where the distance of the heat releasing holes from the light source is relatively small, and the heat reflected to the heat radiation member by the heat reflecting portion can be easily, efficiently released to the rear side of the heat radiation member through the heat releasing holes in the region where the distance of the heat releasing holes from the light source is relatively large.
- In the aforementioned structure in which the heat releasing holes are formed such that the opening density of the heat releasing holes is increased as the distance of the heat releasing holes from the light source is increased, the inner diameter of the plurality of heat releasing holes is preferably increased as the distance of the heat releasing holes from the light source is increased. According to this structure, the inner diameter of the heat releasing holes is increased, whereby the opening density can be easily increased.
- In the aforementioned structure in which the heat releasing portion includes the heat releasing hole that is a through-hole, the heat radiation member is preferably formed of a plate-like metal member, and the heat releasing hole is preferably formed in the heat radiation member that is plate-like. According to this structure, the heat of the light source can be efficiently radiated by the heat radiation member formed of the plate-like metal member, and the heat releasing hole can be easily formed in the heat radiation member that is plate-like.
- In the aforementioned structure including the plurality of heat releasing holes, the heat radiation member and the heat reflecting portion of the reflective sheet are preferably arranged in a state where the heat radiation member and the heat reflecting portion of the reflective sheet are separated from each other at a prescribed interval in an anteroposterior direction, and the heat radiation member is preferably configured to release the heat reflected by the heat reflecting portion to the rear side through the heat releasing holes. According to this structure, unlike the case where the heat radiation member and the heat reflecting portion are in direct contact with each other, heat is radiated from the heat radiation member to the heat reflecting portion through air between the heat radiation member and the heat reflecting portion, and hence the heat of the heat radiation member is hardly directly transferred to the heat reflecting portion.
- In the aforementioned structure in which the heat radiation member and the heat reflecting portion are arranged in the state where the heat radiation member and the heat reflecting portion are separated from each other at the prescribed interval in the anteroposterior direction, the display device preferably further includes a rear frame arranged on the rear side of the heat radiation member, and the heat released to the rear side through the heat releasing holes is preferably radiated through the rear frame. According to this structure, the heat released to the rear side through the heat releasing holes can be easily radiated through the rear frame.
- The aforementioned display device according to the aspect preferably further includes a rear frame made of resin, arranged on the rear side of the heat radiation member, and the rear frame is preferably configured such that the inner surface thereof is blackish colored. According to this structure, unlike the case where the inner surface of the rear frame is white, the heat released to the rear side of the heat radiation member can be efficiently absorbed by the blackish colored rear frame. Thus, the accumulation of the heat reflected by the heat reflecting portion between the heat reflecting portion (reflective sheet) and the heat radiation member can be effectively suppressed.
- In the aforementioned display device according to the aspect, the reflective sheet is preferably made of resin, and a heat reflecting layer made of metal, capable of reflecting the heat radiated from the heat radiation member to the heat radiation member is preferably formed on the rear side of the reflective sheet. According to this structure, transfer of the heat radiated from the heat radiation member to the display portion can be easily suppressed by the heat reflecting layer made of metal even in the case where the reflective sheet is made of resin. Furthermore, the reflective sheet formed with the heat reflecting layer on the rear side is provided, whereby the number of components can be reduced, unlike the case where a dedicated heat reflecting portion is separately provided.
- In this case, the heat reflecting layer is preferably formed of a tape member made of metal or formed by depositing metal on the reflective sheet. According to this structure, the heat reflecting layer can be thinned, and hence an increase in the thickness of the display device in the anteroposterior direction can be suppressed.
- In the aforementioned display device according to the aspect, a plurality of light sources are preferably arranged to be opposed to a side surface of the light guide plate serving as a light incident surface, and the heat reflecting portion is preferably formed from a region corresponding to an end of a first side along the light incident surface in a direction in which the light source is arranged to a region corresponding to an end of the second side along the light incident surface in the reflective sheet. According to this structure, the heat reflecting portion can be provided in a region in the vicinity of the light sources where the temperature of the heat radiation member is easily increased, and hence the transfer of the heat radiated from the heat radiation member to the display portion can be effectively suppressed by the heat reflecting portion.
- In the aforementioned structure including the plurality of heat releasing holes, the heat releasing holes of the heat radiation member are preferably formed such that the total opening area of the heat releasing holes is reduced as the distance of the heat releasing holes from the light source is increased. According to this structure, the heat reflected to the heat radiation member by the heat reflecting portion can be promptly released to the rear side of the heat radiation member through the heat releasing holes in the vicinity of the light source, and hence the amount of heat diffusing to a region of the heat radiation member corresponding to the central side of the display portion is reduced, so that accumulation of heat in the region of the heat radiation member corresponding to the central side of the display portion can be suppressed. Consequently, a reduction in the display quality of a central region of the display device can be further suppressed.
- In the aforementioned display device according to the aspect, the heat radiation member is preferably arranged to overlap with the heat reflecting portion of the reflective sheet. According to this structure, the heat reflected by the heat reflecting portion can be efficiently radiated from the heat radiation member.
- In the aforementioned structure in which the heat radiation member is arranged to overlap with the heat reflecting portion of the reflective sheet, at least the heat releasing portion of the heat radiation member is preferably formed in the heat radiation member to overlap with the heat reflecting portion of the reflective sheet. According to this structure, the heat reflected by the heat reflecting portion can be efficiently released to the rear side of the heat radiation member.
- In the aforementioned structure including the rear frame, an interval between the heat radiation member and a flat portion of the rear frame is preferably larger than an interval between the heat radiation member and the reflective sheet. According to this structure, the heat reflected by the heat reflecting portion can be suppressed from staying between the heat radiation member and the rear frame.
- The aforementioned display device according to the aspect is preferably a television set including a receiver receiving television broadcasting. The present invention is also applicable to the television set.
- According to the present invention, as hereinabove described, the reduction in the display quality of the display device resulting from the heat radiated from the heat radiation member can be suppressed.
- The foregoing and other objects, features, aspects and advantages of the present invention will become more apparent from the following detailed description of the present invention when taken in conjunction with the accompanying drawings.
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FIG. 1 is a diagram showing the overall structure of a TV according to an embodiment of the present invention; -
FIG. 2 is a diagram showing a heat sink fixed to a rear frame of the TV according to the embodiment of the present invention; -
FIG. 3 is a diagram showing the heat sink of the TV according to the embodiment of the present invention; -
FIG. 4 is a diagram showing a heat reflecting portion of the TV according to the embodiment of the present invention; -
FIG. 5 is a sectional view taken along the line 500-500 inFIG. 1 ; -
FIG. 6 is a diagram showing the heat sink and the heat reflecting portion of the TV according to the embodiment of the present invention; -
FIG. 7 is a diagram showing a heat sink of a TV according to a first modification of the embodiment of the present invention; -
FIG. 8 is a diagram showing a heat sink of a TV according to a second modification of the embodiment of the present invention; -
FIG. 9 is a diagram showing a heat sink of a TV according to a third modification of the embodiment of the present invention; and -
FIG. 10 is a diagram showing a heat reflecting portion of a TV according to a fourth modification of the embodiment of the present invention. - An embodiment of the present invention is hereinafter described with reference to the drawings.
- The structure of a TV (television set) 100 according to the embodiment of the present invention is now described with reference to
FIGS. 1 to 6 . TheTV 100 is an example of the “display device” in the present invention. - The
TV 100 according to the embodiment of the present invention includes a front frame 1 having anopening 1 a and a rear frame 2 (seeFIG. 2 ), as shown inFIG. 1 . An antireflection sheet 11 (display portion 10) is exposed from theopening 1 a of the front frame 1. TheTV 100 is configured to be capable of receiving a broadcast signal through a receivingportion 20. - Inside the
TV 100, aheat sink 3 and anLED module 4 including a plurality of LEDs 42 (seeFIG. 6 ) are provided, as shown inFIGS. 5 and 6 . On the front side (X1 side) of theheat sink 3, acushion 5, areflective sheet 6, alight guide plate 7, and anoptical sheet 8 are stacked sequentially from the rear side (X2 side). On the front side of anLED substrate 41, aresin frame 9 is arranged. On the front side of theresin frame 9, thedisplay portion 10 and theantireflection sheet 11 are arranged in this order. TheLEDs 42 are examples of the “light source” in the present invention. - According to this embodiment, the
rear frame 2 is arranged on the rear side (X2 side) of theheat sink 3, as shown inFIGS. 2 , 5, and 6. On the Y1 side of therear frame 2, a rib-like restriction portion 21 (seeFIG. 2 ) restricting movement of theheat sink 3 along arrow Y1 is formed. Therear frame 2 is made of black resin such that the inner surface thereof on the X1 side is black. This black resin can efficiently absorb heat transferred as an infrared ray (electromagnetic wave). Theheat sink 3 is an example of the “heat radiation member” in the present invention. - According to this embodiment, the
heat sink 3 is arranged on the rear side (X2 side) of thelight guide plate 7, as shown inFIGS. 2 , 5, and 6. Therear frame 2 is arranged on the rear side of theheat sink 3. Theheat sink 3 has a function of radiating the heat of theLEDs 42. Theheat sink 3 is made of a plate-like metal material of aluminum or the like, for example. Theheat sink 3 includes a heatsink body portion 31 and an LEDsubstrate fixing portion 32, as shown inFIGS. 2 , 3, 5, and 6. The heatsink body portion 31 is flattened to extend in a Y-Z direction. The LEDsubstrate fixing portion 32 is formed by substantially vertically bending a part of theheat sink 3 on the Y1 side to the front side (X1 side). - The
heat sink 3 is formed in a shape corresponding to a partial region of thelight guide plate 7 on the Y1 side, as shown inFIG. 2 . Specifically, theheat sink 3 is formed from a region in the vicinity of an end 7 a of thelight guide plate 7 on a first side (Z1 side) along alight incident surface 71 to a region in the vicinity of anend 7 b of thelight guide plate 7 on a second side (Z2 side) along thelight incident surface 71. Theheat sink 3 has a schematically rectangular shape in a plan view, as viewed in a direction X. - The
heat sink 3 includes a plurality ofheat releasing holes 33 configured to release heat reflected by aheat reflecting portion 61 described later to the rear side (X2 side) of theheat sink 3, as shown inFIGS. 2 and 3 . The heat released to the rear side through theheat releasing holes 33 is radiated in the air through therear frame 2. Theheat releasing holes 33 are through-holes formed in theheat sink 3. Theheat releasing holes 33 are formed in theheat sink 3 to overlap with the reflective sheet 6 (heat reflecting portion 61). The opening density (the rate of the opening area of theheat releasing holes 33 per unit area) of theheat releasing holes 33 is increased as the distance of theheat releasing holes 33 from theLEDs 42 is increased. Specifically, of the plurality ofheat releasing holes 33, the inner diameter ofheat releasing holes 33 closer to the Y1 side is relatively small, and the inner diameter ofheat releasing holes 33 closer to the Y2 side is relatively large. In other words, the inner diameter of theheat releasing holes 33 is increased as the distance of theheat releasing holes 33 from theLEDs 42 is increased. As the distance (in a direction Y) of theheat releasing holes 33 from theLEDs 42 is increased, the total opening area of theheat releasing holes 33 arranged along a direction Z at each position (in the direction Y) is increased. As theheat releasing holes 33 are from the Y1 side toward the Y2 side, the opening area (inner diameter) of theheat releasing holes 33 is gradually increased. Furthermore, theheat releasing holes 33 each are formed in a substantially circular shape. The plurality ofheat releasing holes 33 are arranged substantially linearly along the direction Z. In addition, the plurality ofheat releasing holes 33 are arranged substantially linearly along the direction Y. The plurality ofheat releasing holes 33 are arranged at prescribed distances D. Specifically, the plurality ofheat releasing holes 33 are arranged such that central portions C of theheat releasing holes 33 are spaced from each other at the equal distances D, as shown inFIG. 2 . Theheat releasing holes 33 are examples of the “heat releasing portion” in the present invention. - The
heat sink 3 is provided with a pair ofprotrusion portions 34 configured to position thereflective sheet 6 and thelight guide plate 7, as shown inFIG. 2 . Theprotrusion portions 34 are provided on the Z1 side and the Z2 side of theheat sink 3, respectively. Theprotrusion portions 34 are formed to protrude to the X1 side. - An interval between the
heat sink 3 and a flat portion (a portion substantially parallel to the reflective sheet 6) of therear frame 2 is larger than an interval between theheat sink 3 and thereflective sheet 6. - The
LED module 4 includes theLED substrate 41 and the plurality ofLEDs 42 mounted on theLED substrate 41, as shown inFIG. 2 . The plurality ofLEDs 42 are arranged to be opposed to thelight incident surface 71 of thelight guide plate 7. TheLEDs 42 are configured to supply light to thedisplay portion 10 through thelight guide plate 7. TheLED module 4 is arranged on the right side (Y1 side) when the TV 100 (seeFIG. 1 ) is viewed from the front side, as shown inFIGS. 2 , 5, and 6. TheLED module 4 is configured such that theLED substrate 41 is fixed to a surface on the Y2 side of the LEDsubstrate fixing portion 32 of theheat sink 3 by a double-faced adhesive tape (not shown). - The
cushion 5 is arranged on the front side (X1 side) of theheat sink 3, as shown inFIGS. 5 and 6 . Thecushion 5 is configured such that the section thereof in the direction Z has a substantially rectangular shape. Thecushion 5 is configured to support thelight guide plate 7 facing the front side (X1 side). Furthermore, thecushion 5 is arranged at a prescribed interval from the LEDsubstrate fixing portion 32 of theheat sink 3, as shown inFIGS. 5 and 6 . Thecushion 5 is made of a material (urethane foam or the like, for example) absorbing a shock. - According to this embodiment, the
reflective sheet 6 is arranged on the X2 side of thelight guide plate 7, as shown inFIGS. 4 to 6 . Thereflective sheet 6 has a function of suppressing light leakage to the rear side (X2 side) of thelight guide plate 7. Furthermore, thereflective sheet 6 is formed in a shape corresponding to that of thelight guide plate 7. Thereflective sheet 6 is made of resin. Thereflective sheet 6 is arranged between thelight guide plate 7 and theheat sink 3 and includes the heat reflecting portion (stratified heat reflecting layer) 61 capable of reflecting heat radiated from theheat sink 3 to theheat sink 3 on the rear side (X2 side), as shown inFIGS. 5 and 6 . Theheat reflecting portion 61 and theheat sink 3 are arranged in a state where the same are separated from each other at a prescribed interval in an anteroposterior direction (direction X). Thereflective sheet 6 has a pair ofpositioning portions 62 in a vertical direction (direction Z), as shown inFIG. 4 . Thepositioning portions 62 are formed at positions corresponding to the protrusion portions (seeFIG. 2 ) of theheat sink 3. Thepositioning portions 62 engage with theprotrusion portions 34 of theheat sink 3, whereby thereflective sheet 6 is arranged at a prescribed position. - The
heat reflecting portion 61 roughly has a substantially rectangular shape in a plan view, as shown inFIG. 4 . Theheat reflecting portion 61 is formed from a region corresponding to anend 6 b of a first side (Z2 side) along aside surface 6 a in a direction (direction Z) in which theLEDs 42 are arranged to a region corresponding to anend 6 c of a second side (Z1 side) along theside surface 6 a in thereflective sheet 6. Theheat reflecting portion 61 is arranged in the vicinity of the light incident surface 71 (seeFIG. 6 ), as shown inFIGS. 2 and 6 . Furthermore, theheat reflecting portion 61 is formed in a shape corresponding to that of theheat sink 3, as shown inFIGS. 3 and 4 . Theheat sink 3 is arranged to overlap with theheat reflecting portion 61 of thereflective sheet 6. - As shown in
FIGS. 2 , 5, and 6, the plurality ofheat releasing holes 33 are formed at positions of theheat sink 3 opposed to theheat reflecting portion 61. As shown inFIG. 6 , the heat reflected to theheat sink 3 by theheat reflecting portion 61 is released from the plurality ofheat releasing holes 33 to the rear side (X2 side) of theheat sink 3. Theheat reflecting portion 61 is provided by applying a tape made of metal (aluminum, for example) to the rear side of thereflective sheet 6, as shown inFIGS. 4 to 6 . Theheat reflecting portion 61 may be formed of a heat reflecting layer of metal formed by depositing metal on the rear side of thereflective sheet 6. - According to this embodiment, the
light guide plate 7 is schematically formed in a substantially rectangular shape, as shown inFIGS. 1 and 2 . Thelight guide plate 7 is arranged on the rear side (X2 side) of thedisplay portion 10 and has a function of guiding backlight emitted from theLEDs 42 to thedisplay portion 10. Furthermore, thelight guide plate 7 is configured such that thelight incident surface 71 receiving light emitted from theLEDs 42 is opposed to theLEDs 42, as shown inFIG. 6 . Thelight guide plate 7 is made of resin (acrylic resin, for example). Thelight guide plate 7 has a pair ofpositioning portions 72 in the vertical direction (direction Z), as shown inFIG. 2 . Thepositioning portions 72 are formed at positions corresponding to theprotrusion portions 34 of theheat sink 3. Thepositioning portions 72 engage with theprotrusion portions 34, whereby thelight guide plate 7 is arranged at a prescribed position. - The
optical sheet 8 is provided on the front side (X1 side) of thelight guide plate 7, as shown inFIGS. 5 and 6 . Theoptical sheet 8 has a function of efficiently transferring light emitted from thelight guide plate 7 to thedisplay portion 10. - The
resin frame 9 is configured to fix thelight guide plate 7 to a prescribed position, as shown inFIGS. 5 and 6 . - The display portion 10 (see
FIG. 6 ) is configured to display an image on the front side (X1 side). Thedisplay portion 10 is mainly constituted by a liquid crystal cell. On the front side of thedisplay portion 10, theantireflection sheet 11 is arranged, as shown inFIGS. 5 and 6 . - According to this embodiment, as hereinabove described, the
reflective sheet 6 including theheat reflecting portion 61 capable of reflecting the heat radiated from theheat sink 3 to theheat sink 3 on the rear side is arranged between thelight guide plate 7 and theheat sink 3, and theheat sink 3 includes theheat releasing holes 33 configured to release the heat reflected by theheat reflecting portion 61 to the rear side of theheat sink 3, whereby accumulation of the heat reflected by theheat reflecting portion 61 between the heat reflecting portion 61 (reflective sheet 6) and theheat sink 3 can be suppressed by releasing the heat reflected by theheat reflecting portion 61 to the rear side of theheat sink 3 while theheat reflecting portion 61 suppresses transfer of the heat radiated from theheat sink 3 to thelight guide plate 7 through thereflective sheet 6. Thus, a user can be suppressed from visually recognizing the shape of theheat sink 3 due to the heat radiated from theheat sink 3. Consequently, a reduction in the display quality of theTV 100 resulting from the heat radiated from theheat sink 3 can be suppressed. - According to this embodiment, the
heat releasing holes 33 include the through-holes. Thus, theheat releasing holes 33 can be easily provided. - According to this embodiment, the plurality of
heat releasing holes 33 are formed at the positions of thereflective sheet 6 opposed to theheat reflecting portion 61, and theheat sink 3 is configured to release heat to the rear side of theheat sink 3 through the plurality ofheat releasing holes 33, whereby the heat reflected to theheat sink 3 by theheat reflecting portion 61 can be easily released to the rear side of theheat sink 3 through the plurality ofheat releasing holes 33, and hence the accumulation of the heat reflected by theheat reflecting portion 61 between the heat reflecting portion 61 (reflective sheet 6) and theheat sink 3 can be easily suppressed. - According to this embodiment, the plurality of
heat releasing holes 33 are arranged such that the central portions C of the plurality ofheat releasing holes 33 are spaced from each other at the substantially equal distances D. Thus, the plurality ofheat releasing holes 33 are arranged in a balanced manner, and the heat reflected by theheat reflecting portion 61 is released to the rear side of theheat sink 3, whereby the accumulation of the heat reflected by theheat reflecting portion 61 between theheat reflecting portion 61 and theheat sink 3 can be effectively suppressed. - According to this embodiment, the opening density of the
heat releasing holes 33 of theheat sink 3 is increased as the distance of theheat releasing holes 33 from theLEDs 42 is increased. Thus, the heat of theLEDs 42 can be efficiently absorbed by theheat sink 3 in a region where the distance of theheat releasing holes 33 from theLEDs 42 is relatively small, and the heat reflected to theheat sink 3 by theheat reflecting portion 61 can be efficiently released to the rear side of theheat sink 3 through theheat releasing holes 33 in a region where the distance of theheat releasing holes 33 from theLEDs 42 is relatively large. Thus, the reduction in the display quality of theTV 100 resulting from the heat radiated from theheat sink 3 can be suppressed while theLEDs 42 are efficiently cooled. - According to this embodiment, the
heat releasing holes 33 are formed such that the total opening area is increased as the distance of theheat releasing holes 33 from theLEDs 42 is increased, whereby the opening density can be easily increased as the distance of theheat releasing holes 33 from theLEDs 42 is increased. Thus, the heat of theLEDs 42 can be easily, efficiently absorbed by theheat sink 3 in the region where the distance of theheat releasing holes 33 from theLEDs 42 is relatively small, and the heat reflected to theheat sink 3 by theheat reflecting portion 61 can be easily, efficiently released to the rear side of theheat sink 3 through theheat releasing holes 33 in the region where the distance of theheat releasing holes 33 from theLEDs 42 is relatively large. Therefore, the reduction in the display quality of theTV 100 resulting from the heat radiated from theheat sink 3 can be suppressed while theLEDs 42 are efficiently cooled. - According to this embodiment, the inner diameter of the plurality of
heat releasing holes 33 is increased as the distance of theheat releasing holes 33 from theLEDs 42 is increased. Thus, the inner diameter of theheat releasing holes 33 is increased, whereby the opening density can be easily increased. - According to this embodiment, the
heat sink 3 is formed of a plate-like metal member, and theheat releasing holes 33 are formed in the plate-like heat sink 3. Thus, the heat of theLEDs 42 can be efficiently radiated by theheat sink 3 formed of the plate-like metal member, and theheat releasing holes 33 can be easily formed in the plate-like heat sink 3. - According to this embodiment, the
heat sink 3 and theheat reflecting portion 61 of thereflective sheet 6 are arranged in the state where the same are separated from each other at the prescribed interval in the anteroposterior direction, and theheat sink 3 is configured to release the heat reflected by theheat reflecting portion 61 to the rear side through theheat releasing holes 33, whereby heat is radiated from theheat sink 3 to theheat reflecting portion 61 through air between theheat sink 3 and theheat reflecting portion 61, and hence the heat of theheat sink 3 is hardly directly transferred to theheat reflecting portion 61. - According to this embodiment, the
rear frame 2 arranged on the rear side of theheat sink 3 is provided, and the heat released to the rear side through theheat releasing holes 33 is radiated through therear frame 2. Thus, the heat released to the rear side through theheat releasing holes 33 can be easily radiated through therear frame 2. - According to this embodiment, the
rear frame 2 made of resin whose inner surface is black is arranged on the rear side of theheat sink 3, whereby the heat released to the rear side of theheat sink 3 can be efficiently absorbed by therear frame 2. Thus, the accumulation of the heat reflected by theheat reflecting portion 61 between the heat reflecting portion 61 (reflective sheet 6) and theheat sink 3 can be effectively suppressed. - According to this embodiment, the heat reflecting layer made of metal is formed on the rear side of the
reflective sheet 6 made of resin, whereby transfer of the heat radiated from theheat sink 3 to thedisplay portion 10 can be easily suppressed by the heat reflecting layer made of metal even in the case where thereflective sheet 6 is made of resin. - According to this embodiment, the heat reflecting portion (heat reflecting layer) 61 is formed of a tape member made of metal (aluminum). Thus, the heat reflecting portion (heat reflecting layer) 61 can be thinned, and hence an increase in the thickness of the
TV 100 in the anteroposterior direction can be suppressed. - According to this embodiment, the plurality of
LEDs 42 are arranged to be opposed to thelight incident surface 71 of thelight guide plate 7, and theheat reflecting portion 61 is formed from the region corresponding to theend 6 b of the first side along thelight incident surface 71 to the region corresponding to theend 6 c of the second side along thelight incident surface 71, whereby theheat reflecting portion 61 can be provided in a region in the vicinity of theLEDs 42 where the temperature of theheat sink 3 is easily increased, and hence the transfer of the heat radiated from theheat sink 3 to thedisplay portion 10 can be effectively suppressed by theheat reflecting portion 61. - According to this embodiment, the
heat sink 3 is arranged to overlap with theheat reflecting portion 61 of thereflective sheet 6. Thus, the heat reflected by theheat reflecting portion 61 can be efficiently radiated from theheat sink 3. - According to this embodiment, the
heat releasing holes 33 of theheat sink 3 are formed in theheat sink 3 to overlap with theheat reflecting portion 61 of thereflective sheet 6. Thus, the heat reflected by theheat reflecting portion 61 can be efficiently released to the rear side of theheat sink 3. - According to this embodiment, the interval between the
heat sink 3 and the flat portion of therear frame 2 is larger than the interval between theheat sink 3 and thereflective sheet 6. Thus, the heat reflected by theheat reflecting portion 61 can be suppressed from staying between theheat sink 3 and therear frame 2. - The embodiment disclosed this time must be considered as illustrative in all points and not restrictive. The range of the present invention is shown not by the above description of the embodiment but by the scope of claims for patent, and all modifications within the meaning and range equivalent to the scope of claims for patent are further included.
- For example, while the present invention is applied to the TV (television set) as the display device in the aforementioned embodiment, the present invention is not restricted to this. The present invention is also applicable to another display device, such as a monitor of a PC (personal computer).
- While the inner diameter of the
heat releasing holes 33 is varied so that the total opening area of theheat releasing holes 33 of theheat sink 3 is increased as the distance of theheat releasing holes 33 from theLEDs 42 is increased in the aforementioned embodiment, the present invention is not restricted to this. According to the present invention, the total opening area ofheat releasing holes 233 of a heat radiation member 203 may alternatively be increased as the distance of theheat releasing holes 233 from a light source (LEDs 42) is increased by forming the heat radiation member 203 such that the inner diameter of theheat releasing holes 233 is constant but the number of theheat releasing holes 233 is increased as the distance of theheat releasing holes 233 from the light source is increased, as in a first modification shown inFIG. 7 . Thus, the heat of the light source can be efficiently absorbed by the heat radiation member 203 simply by varying the arrangement of theheat releasing holes 233 without varying the inner diameter of theheat releasing holes 233, and heat reflected to the heat radiation member 203 by a heat reflecting portion can be efficiently released to the rear side of the heat radiation member 203 through theheat releasing holes 233 in a region where the distance of theheat releasing holes 233 from the light source is relatively large. Furthermore, according to the present invention, the total opening area ofheat releasing holes 333 of aheat radiation member 303 may alternatively be substantially constant by forming theheat radiation member 303 such that the inner diameter of theheat releasing holes 333 is constant and the number of theheat releasing holes 333 is constant (the ratio of distribution of theheat releasing holes 333 is constant) even if the distance of theheat releasing holes 333 from a light source is increased, as in a second modification shown inFIG. 8 . Thus, the arrangement of theheat releasing holes 333 may not be complicated, and hence theheat radiation member 303 including theheat releasing holes 333 can be easily formed. - As in a third modification shown in
FIG. 9 , the total opening area ofheat releasing holes 433 of a heat radiation member 403 may alternatively be reduced as the distance of theheat releasing holes 433 from a light source is increased. Thus, heat reflected to the heat radiation member 403 by a heat reflecting portion can be promptly released to the rear side of the heat radiation member 403 through theheat releasing holes 433 in the vicinity of the light source, and hence the amount of heat diffusing to a region of the heat radiation member 403 corresponding to the central side of a display portion is reduced, so that accumulation of heat in the region of the heat radiation member 403 corresponding to the central side of the display portion can be suppressed. Consequently, a reduction in the display quality of a central region of a display device can be further suppressed. - While the
heat sink 3 and theheat reflecting portion 61 are arranged in the state where the same are separated from each other at the prescribed interval in the anteroposterior direction in the aforementioned embodiment, the present invention is not restricted to this. According to the present invention, the heat radiation member and the heat reflecting portion may alternatively be arranged in a state where the same come into close contact with each other in the anteroposterior direction. Thus, an increase in the thickness of the display device in the anteroposterior direction can be suppressed. - While the
rear frame 2 whose inner surface is black is provided in the aforementioned embodiment, the present invention is not restricted to this. According to the present invention, a rear frame whose inner surface is blackish colored (charcoal gray or the like, for example) may alternatively be provided. - While the
rear frame 2 is made of resin in the aforementioned embodiment, the present invention is not restricted to this. According to the present invention, the rear frame may alternatively be made of metal. Thus, heat released to the rear side of the heat radiation member can be easily absorbed by the rear frame and radiated to the outside. - While the
reflective sheet 6 is made of resin in the aforementioned embodiment, the present invention is not restricted to this. According to the present invention, the reflective sheet may alternatively be made of metal. - While the
heat reflecting portion 61 is provided at the position corresponding to theheat sink 3 in the aforementioned embodiment, the present invention is not restricted to this. According to the present invention, a heat reflecting portion may alternatively be formed on the entire surface of areflective sheet 506 on the rear side, as in a fourth embodiment shown inFIG. 10 . - While the
heat sink 3 in the shape corresponding to the partial region of thelight guide plate 7 on the Y1 side is provided in the aforementioned embodiment, the present invention is not restricted to this. According to the present invention, a heat radiation member in a shape corresponding to a substantially entire region of the light guide plate may alternatively be provided.
Claims (19)
1. A display device comprising:
a display portion displaying an image on a front side;
a light guide plate arranged on a rear side of the display portion, guiding backlight emitted from a light source to the display portion;
a heat radiation member arranged on a rear side of the light guide plate, radiating heat of the light source; and
a reflective sheet arranged between the light guide plate and the heat radiation member, including a heat reflecting portion capable of reflecting the heat radiated from the heat radiation member to the heat radiation member on a rear side, wherein
the heat radiation member includes a heat releasing portion configured to release the heat reflected by the heat reflecting portion to a rear side of the heat radiation member.
2. The display device according to claim 1 , wherein
the heat releasing portion includes a heat releasing hole that is a through-hole.
3. The display device according to claim 2 , wherein
the heat releasing portion of the heat radiation member includes a plurality of heat releasing holes,
the plurality of heat releasing holes are formed at positions of the reflective sheet opposed to the heat reflecting portion, and
the heat reflected to the heat radiation member by the heat reflecting portion is released to the rear side of the heat radiation member through the plurality of heat releasing holes.
4. The display device according to claim 3 , wherein
the plurality of heat releasing holes are arranged such that centers thereof are spaced from each other at a substantially equal distance.
5. The display device according to claim 3 , wherein
the heat releasing holes of the heat radiation member are formed such that an opening density of the heat releasing holes is increased as a distance of the heat releasing holes from the light source is increased.
6. The display device according to claim 5 , wherein
the heat releasing holes of the heat radiation member are formed such that a total opening area of the heat releasing holes is increased as the distance of the heat releasing holes from the light source is increased.
7. The display device according to claim 5 , wherein
an inner diameter of the plurality of heat releasing holes is increased as the distance of the heat releasing holes from the light source is increased.
8. The display device according to claim 2 , wherein
the heat radiation member is formed of a plate-like metal member, and
the heat releasing hole is formed in the heat radiation member that is plate-like.
9. The display device according to claim 3 , wherein
the heat radiation member and the heat reflecting portion of the reflective sheet are arranged in a state where the heat radiation member and the heat reflecting portion of the reflective sheet are separated from each other at a prescribed interval in an anteroposterior direction, and
the heat radiation member is configured to release the heat reflected by the heat reflecting portion to the rear side through the heat releasing holes.
10. The display device according to claim 9 , further comprising a rear frame arranged on the rear side of the heat radiation member, wherein
the heat released to the rear side through the heat releasing holes is radiated through the rear frame.
11. The display device according to claim 1 , further comprising a rear frame made of resin, arranged on the rear side of the heat radiation member, wherein
the rear frame is configured such that an inner surface thereof is blackish colored.
12. The display device according to claim 1 , wherein
the reflective sheet is made of resin, and
a heat reflecting layer made of metal, capable of reflecting the heat radiated from the heat radiation member to the heat radiation member is formed on a rear side of the reflective sheet.
13. The display device according to claim 12 , wherein
the heat reflecting layer is formed of a tape member made of metal or formed by depositing metal on the reflective sheet.
14. The display device according to claim 1 , wherein
a plurality of light sources are arranged to be opposed to a side surface of the light guide plate serving as a light incident surface, and
the heat reflecting portion is formed from a region corresponding to an end of a first side along the light incident surface in a direction in which the light source is arranged to a region corresponding to an end of the second side along the light incident surface in the reflective sheet.
15. The display device according to claim 3 , wherein
the heat releasing holes of the heat radiation member are formed such that a total opening area of the heat releasing holes is reduced as a distance of the heat releasing holes from the light source is increased.
16. The display device according to claim 1 , wherein
the heat radiation member is arranged to overlap with the heat reflecting portion of the reflective sheet.
17. The display device according to claim 16 , wherein
at least the heat releasing portion of the heat radiation member is formed in the heat radiation member to overlap with the heat reflecting portion of the reflective sheet.
18. The display device according to claim 10 , wherein
an interval between the heat radiation member and a flat portion of the rear frame is larger than an interval between the heat radiation member and the reflective sheet.
19. The display device according to claim 1 , being a television set including a receiver receiving television broadcasting.
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP2013020896A JP2014153437A (en) | 2013-02-05 | 2013-02-05 | Display device |
| JP2013-020896 | 2013-02-05 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| US20140218617A1 true US20140218617A1 (en) | 2014-08-07 |
Family
ID=51258957
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US14/165,884 Abandoned US20140218617A1 (en) | 2013-02-05 | 2014-01-28 | Display Device |
Country Status (2)
| Country | Link |
|---|---|
| US (1) | US20140218617A1 (en) |
| JP (1) | JP2014153437A (en) |
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| CN105842891A (en) * | 2015-01-30 | 2016-08-10 | Nlt科技股份有限公司 | Liquid crystal display device |
| US20170101013A1 (en) * | 2015-10-13 | 2017-04-13 | Samsung Display Co., Ltd. | Display device and automobile including the same |
| US10820455B2 (en) * | 2016-11-22 | 2020-10-27 | Samsung Display Co., Ltd. | Display device |
| CN112309251A (en) * | 2019-08-02 | 2021-02-02 | 三星显示有限公司 | Display device including heat dissipation member |
| CN115148110A (en) * | 2022-07-29 | 2022-10-04 | 昆山国显光电有限公司 | Support piece, display module and display device |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP6578471B2 (en) * | 2015-02-27 | 2019-09-25 | 富士通クライアントコンピューティング株式会社 | Display device |
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| US6871979B2 (en) * | 2002-10-21 | 2005-03-29 | Toppoly Optoelectronics Corp. | Back light module |
| US20110043721A1 (en) * | 2009-08-18 | 2011-02-24 | Samsung Electronics Co., Ltd | Back light assembly and liquid crystal display including the same |
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| CN105842891A (en) * | 2015-01-30 | 2016-08-10 | Nlt科技股份有限公司 | Liquid crystal display device |
| US20170101013A1 (en) * | 2015-10-13 | 2017-04-13 | Samsung Display Co., Ltd. | Display device and automobile including the same |
| US9905794B2 (en) * | 2015-10-13 | 2018-02-27 | Samsung Display Co., Ltd. | Display device and automobile including the same |
| US10199595B2 (en) | 2015-10-13 | 2019-02-05 | Samsung Display Co., Ltd. | Display device and automobile including the same |
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| CN112309251A (en) * | 2019-08-02 | 2021-02-02 | 三星显示有限公司 | Display device including heat dissipation member |
| US11271191B2 (en) * | 2019-08-02 | 2022-03-08 | Samsung Display Co., Ltd. | Display device including a heat dissipation member |
| CN115148110A (en) * | 2022-07-29 | 2022-10-04 | 昆山国显光电有限公司 | Support piece, display module and display device |
Also Published As
| Publication number | Publication date |
|---|---|
| JP2014153437A (en) | 2014-08-25 |
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Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| AS | Assignment |
Owner name: FUNAI ELECTRIC CO., LTD., JAPAN Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNOR:HONGO, NAOKI;REEL/FRAME:032065/0602 Effective date: 20140108 |
|
| STCB | Information on status: application discontinuation |
Free format text: ABANDONED -- FAILURE TO RESPOND TO AN OFFICE ACTION |